TY - JOUR
T1 - Pentaquarks made of light quarks and their admixture to baryons
AU - Miesch, Nicholas
AU - Shuryak, Edward
AU - Zahed, Ismail
N1 - Publisher Copyright:
Published by the American Physical Society under the terms of the Creative Commons Attribution 4.0 International license. Further distribution of this work must maintain attribution to the author(s) and the published article’s title, journal citation, and DOI. Funded by SCOAP3.
PY - 2025/10/15
Y1 - 2025/10/15
N2 - This paper is a continuation of our studies of multiquark hadrons. The antisymmetrization of their wave functions required by Fermi statistics is nontrivial, as it mixes orbital, color, spin, and flavor structures. In our previous papers we developed a method to find them based on the representations of the permutation group, and derived the explicit wave functions for baryons excited to the first and second shells (L ¼ 1, 2), tetraquarks qq¯q ¯q and hexaquarks (6q). Now we apply it to light pentaquarks (qqqq¯q), in the S- and P-shells (L ¼ 0, 1). Using Jacobi coordinates, one can use the hyperdistance approximation in 12-dimensional space. We further address the issue of “unquenching” of baryons, by considering their mixing with pentaquarks, via two channels, through the addition of σ-like or π-like ¯qq pairs. This mixing is central for understanding of the observed flavor asymmetry of the antiquark sea, the amount of orbital motion issue as well as other nucleon properties.
AB - This paper is a continuation of our studies of multiquark hadrons. The antisymmetrization of their wave functions required by Fermi statistics is nontrivial, as it mixes orbital, color, spin, and flavor structures. In our previous papers we developed a method to find them based on the representations of the permutation group, and derived the explicit wave functions for baryons excited to the first and second shells (L ¼ 1, 2), tetraquarks qq¯q ¯q and hexaquarks (6q). Now we apply it to light pentaquarks (qqqq¯q), in the S- and P-shells (L ¼ 0, 1). Using Jacobi coordinates, one can use the hyperdistance approximation in 12-dimensional space. We further address the issue of “unquenching” of baryons, by considering their mixing with pentaquarks, via two channels, through the addition of σ-like or π-like ¯qq pairs. This mixing is central for understanding of the observed flavor asymmetry of the antiquark sea, the amount of orbital motion issue as well as other nucleon properties.
UR - https://www.scopus.com/pages/publications/105020400072
U2 - 10.1103/vdp9-mmbj
DO - 10.1103/vdp9-mmbj
M3 - Review article
AN - SCOPUS:105020400072
SN - 2470-0010
VL - 112
JO - Physical Review D
JF - Physical Review D
IS - 7
M1 - 074017
ER -